Zhao Xiaohui, Liu Yutong, Cao Yue, Cao Hui, Wang Huihui, Yang Zhou, Wang Dong, He Wanli
School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China.
Key Laboratory of Optoelectronics Technology, Ministry of Education, Beijing University of Technology, Beijing 100124, China.
Materials (Basel). 2023 Dec 15;16(24):7660. doi: 10.3390/ma16247660.
We prepared cholesteric liquid crystal (CLC) films with broadband reflective properties by admixing organic dye UV-327 into inorganic zinc oxide nanoparticles (ZnO NPs), utilizing the principle of pitch distribution from a large to a small gradient along the film thickness direction, leading to broadband reflection. ZnO NPs are poorly dispersed and easy to gather, but they do not decompose easily. The addition of UV-327 makes up for the above shortcomings. UV-327 is an organic compound with good compatibility and dispersion with liquid crystal systems. Therefore, we used the method of mixing two UV-absorbing dyes (UV-327 and ZnO NPs) to obtain CLC films. UV-absorbing dyes (UV-327 and ZnO NPs) made the liquid crystal films form a UV intensity gradient in the direction of thickness, prompting the polymerizable monomers to polymerize faster on the stronger side of the light, leading to the relative diffusion of chiral molecules and polymerizable monomers, forming the concentration gradient of chiral molecules in the direction of thickness. The pitch has a gradient distribution as the chiral concentration varies. Then, anchored by the polymer network, the pitch gradient distribution no longer changes. Broadened reflective bandwidth can reach up to 881 nm. Furthermore, the film covers the near-infrared wavelength band well, which can be applied to future smart windows or laser shielding for medical and military applications. It is also believed that this achievement will optimize the preparation technology of broadband reflective CLC films in the future.
我们通过将有机染料UV - 327与无机氧化锌纳米颗粒(ZnO NPs)混合,利用沿薄膜厚度方向从大到小的梯度间距分布原理,制备出具有宽带反射特性的胆甾相液晶(CLC)薄膜,从而实现宽带反射。ZnO NPs分散性差且容易聚集,但不易分解。UV - 327的添加弥补了上述缺点。UV - 327是一种与液晶体系具有良好相容性和分散性的有机化合物。因此,我们采用混合两种紫外线吸收染料(UV - 327和ZnO NPs)的方法来获得CLC薄膜。紫外线吸收染料(UV - 327和ZnO NPs)使液晶薄膜在厚度方向上形成紫外线强度梯度,促使可聚合单体在光较强的一侧更快地聚合,导致手性分子和可聚合单体的相对扩散,在手性分子的浓度方向上形成厚度梯度。随着手性浓度的变化,间距具有梯度分布。然后,在聚合物网络的固定下,间距梯度分布不再改变。拓宽后的反射带宽可达881 nm。此外,该薄膜对近红外波段覆盖良好,可应用于未来的智能窗户或医疗和军事应用中的激光防护。人们还认为,这一成果将在未来优化宽带反射CLC薄膜的制备技术。